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Given a path like /a/./b/c/../d, I would like to remove all the "current directory" indicators (i.e., period) and "parent directory" indicators (i.e., ..), giving a/b/d.

I could use File.getCanonicalPath(), but that also resolves symlinks, which I don't want.

Any simple way? That is, simpler than writing a tokenizer and handling it all myself.

Bonus points if you can tell me what the right name for '.' and '..' are in this context.

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2 Answers 2

up vote 2 down vote accepted

You can use FilenameUtils.normalize() in the Apache Commons IO library - see javadoc here.

"Dot" (.) is the current directory and "dot dot" (..) is the parent directory - read up on unix directories.

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getAbsolutePath doesn't resolve . or .. - it only ensures a path is absolute. Paths with .. can still be absolute, as in my example. –  BeeOnRope Nov 8 '12 at 2:03
    
Sorry, misread your question, see my edit. –  doublesharp Nov 8 '12 at 2:12
    
Thanks. To clarify I am well-aware what . and .. are. what I meant was what to call the dot forms of these specifically, as in the title to my question. –  BeeOnRope Nov 8 '12 at 2:15
    
Ha, then "dot" and "dot dot" :) –  doublesharp Nov 8 '12 at 2:17

Guava also has this as Files.simplifyPath(String). Your best bet, though, (if you can use JDK7) is to represent your path as a Path and use Path.normalize() to get the normalized version.

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Thanks. This is actually very useful for me as we depend on guava but not commons-io currently. Not at Java 7, but the link was very informative. I hadn't thought about the case of a/../b where a is a symlink. –  BeeOnRope Nov 8 '12 at 4:14

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